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Beam‐commissioning methodology for a three‐dimensional convolution/superposition photon dose algorithm

机译:三维卷积/叠加光子剂量算法的光束调试方法

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摘要

Commissioning beam data for the convolution/superposition dose‐calculation algorithm used in a commercial three‐dimensional radiation treatment planning (3D RTP) system (PINNACLE3, ADAC Laboratories, Milpitas, CA) can be difficult and time consuming. Sixteen adjustable parameters, as well as spectral weights representing a discrete energy spectrum, must be fit to sets of central‐axis depth doses and off‐axis profiles for a large number of field sizes. This paper presents the beam‐commissioning methodology that we used to generate accurate beam models. The methodology is relatively rapid and provides physically reasonable values for beam parameters. The methodology was initiated by using vendor‐provided automodeling software to generate a single set of beam parameters that gives an approximate fit to relative dose distributions for all beams, open and wedged, in a data set. A limited number of beam parameters were adjusted by small amounts to give accurate beam models for four open‐beam field sizes and three wedged‐beam field sizes. Beam parameters for other field sizes were interpolated and validated against measured beam data. Using this methodology, a complete set of beam parameters for a single energy can be generated and validated in approximately 40 h. The resulting parameter values yielded calculated relative doses that matched measured relative doses in a water phantom to within 0.5–1.0% along the central axis and 2% along off‐axis beam profiles for field sizes from 4cm × 4cm to the largest field size available. While the methodology presented is specific to the ADAC PINNACLE3 treatment planning system, the approach should apply to other implementations of the dose model in other treatment planning system.PACS number(s): 87.53.–j, 87.66.–a
机译:用于商业三维放射治疗计划(3D RTP)系统(PINNACLE 3 ,ADAC Laboratories,Milpitas,CA)中使用的卷积/叠加剂量计算算法的调试光束数据可能很困难并且很耗时。消耗。十六个可调参数,以及代表离散能量谱的谱权重,必须适合大量场尺寸的中心轴深度剂量和离轴剖面集。本文介绍了我们用于生成准确的光束模型的光束调试方法。该方法是相对快速的,并且为射束参数提供了物理上合理的值。该方法通过使用供应商提供的自动建模软件来生成,以生成单个光束参数集,该参数对数据集中所有开放和楔形光束的相对剂量分布提供近似拟合。少量调整有限数量的光束参数,以提供针对四种开放光束场尺寸和三种楔形光束场尺寸的精确光束模型。内插其他领域尺寸的光束参数,并根据测得的光束数据进行验证。使用这种方法,可以在大约40小时内生成并验证单个能量的完整束参数。最终的参数值产生了计算出的相对剂量,该相对剂量与水模型中的相对剂量相匹配,沿中心轴在0.5–1.0%之内,而沿离轴光束轮廓在2%以内,适用于从4cm×4cm到最大可用场的尺寸。虽然介绍的方法特定于ADAC PINNACLE 3 治疗计划系统,但该方法应适用于其他治疗计划系统中剂量模型的其他实现。PACS编号:87.53.-j, 87.66.–a

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